ISL28127FBZ-T7 Allicdata Electronics
Allicdata Part #:

ISL28127FBZ-T7-ND

Manufacturer Part#:

ISL28127FBZ-T7

Price: $ 0.00
Product Category:

Integrated Circuits (ICs)

Manufacturer: Intersil
Short Description: IC OPAMP GP 10MHZ 8SOIC
More Detail: General Purpose Amplifier 1 Circuit 8-SOIC
DataSheet: ISL28127FBZ-T7 datasheetISL28127FBZ-T7 Datasheet/PDF
Quantity: 1000
1 +: 0.00000
Stock 1000Can Ship Immediately
$ 0
Specifications
Voltage - Input Offset: 10µV
Base Part Number: ISL28127
Supplier Device Package: 8-SOIC
Package / Case: 8-SOIC (0.154", 3.90mm Width)
Mounting Type: Surface Mount
Operating Temperature: -40°C ~ 125°C
Voltage - Supply, Single/Dual (±): 4.5 V ~ 40 V, ±2.25 V ~ 20 V
Current - Output / Channel: 45mA
Current - Supply: 2.2mA
Series: --
Current - Input Bias: 1nA
Gain Bandwidth Product: 10MHz
Slew Rate: 3.6 V/µs
Output Type: --
Number of Circuits: 1
Amplifier Type: General Purpose
Part Status: Obsolete
Packaging: Tape & Reel (TR) 
Description

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The ISL28127FBZ-T7 low power, low gain error instrumentation amplifiers are up to 8 times more precise than conventional amplifiers and can be used for many mission-critical applications. This instrumentation amplifier provides high accuracy and wide bandwidth performance for use in a variety of medical, industrial and consumer applications. This product delivers optimal gain and offset accuracy, ensuring low power and low noise output.

Instrumentation amplifiers are useful for low-level signals, such as those from microphones, because they require a very small amount of energy to amplify the signal. Also, because of the high accuracy and bandwidth of the ISL28127FBZ-T7, these amplifiers are ideal for creating precision instrumentation and measurement devices or for controlling sensors or systems with maximum accuracy.

Working Principle:

The ISL28127FBZ-T7 instrumentation amplifier utilizes a current mode-based architecture to deliver low power operation and highly accurate gain control. This low power, low gain error amplifier features an offset voltage of less than 1mV, maximum linearity error of 0.8%, and a gain range of 0.5 to 100 dB. By employing a wide gain range and low noise, this amplifier is well suited for a variety of applications including medical device measurement, industrial process control, and consumer electronics.

The ISL28127FBZ-T7 instrumentation amplifier has two main components – an amplifier and a buffer. The amplifier module raises the input voltage to a higher level, providing an increase in signal level. The buffer module is used for output current to match the input and output impedances, as well as for providing buffering, which helps reduce distortion from input signals. The ISL28127FBZ-T7 uses a single-ended, two-stage amplifier/buffering configuration, in which the input signal is first amplified by the amplifier and then buffered by the buffer, resulting in a cleaner and more reliable output signal.

The ISL28127FBZ-T7 also features input and output protection, ensuring that the amplifier is resistant to accidental overvoltage or undervoltage conditions. This instrumentation amplifier offers maximum flexibility and ease of use, with a variable gain technique that allows the gain of the amplifier to be adjusted over a wide range with a simple voltage or current control.

One major benefit of the ISL28127FBZ-T7 is its low quiescent current. This low quiescent current allows for a small form factor, making it ideal for applications with space constraints. The amplifier also has a low power-down current, enabling it to be used in applications where power conservation is critical.

In summary, the ISL28127FBZ-T7 instrumentation amplifier is a high accuracy, low power, and low noise device, making it well suited for use in many medical, industrial, and consumer applications. It can be used for precision instrumentation and measurement systems, controlling sensors or systems with maximum accuracy, and creating buffered, low-level signals. Its low quiescent and power-down currents offer an efficient solution for space-constrained applications, while its wide gain range, offset voltage, and linearity error offer an optimal combination of accuracy and control.

The specific data is subject to PDF, and the above content is for reference

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